压缩二氧化碳储能技术的进展与评估:全面回顾

Hailing Ma, Yao Tong, Xiao Wang and Hongxu Wang
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引用次数: 0

摘要

压缩二氧化碳储能(CCES)因其直接液化、卓越的储能密度和环境兼容性等众多优势,成为各种储能解决方案中颇具前景的替代方案。本综述全面探讨了 CCES 系统的最新进展、经济可行性、技术可行性和操作方面的问题。它概括了评估方法,研究了压缩二氧化碳存储的复杂性,并探索了 CCES 技术性能优化的途径。对比分析表明,在跨临界、超临界和液体 CCES 系统中,超临界变体具有更强的热力学特性和更简单的配置,是大规模应用的首选。此外,本综述还纳入了二氧化碳相关转化技术的最新进展,如光催化和光热二氧化碳还原,这进一步增强了 CCES 系统的潜力。综述强调了 CCES 的未来发展方向,强调了最佳压缩-膨胀比、精细分析模型和多学科综合方法的必要性。本讨论旨在为 CCES 系统的有效设计和实施提供基础参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Advancements and assessment of compressed carbon dioxide energy storage technologies: a comprehensive review

Compressed carbon dioxide energy storage (CCES) emerges as a promising alternative among various energy storage solutions due to its numerous advantages, including straightforward liquefaction, superior energy storage density, and environmental compatibility. This review delves into the recent advancements, economic viability, technological feasibilities, and operational aspects of CCES systems comprehensively. It encapsulates the evaluation methodologies, examines the intricacies of compressed carbon dioxide storage, and explores the avenues for performance optimization within CCES technology. A comparative analysis reveals that among trans-critical, supercritical, and liquid CCES systems, the supercritical variant exhibits enhanced thermodynamic properties and a more straightforward configuration, positioning it as the preferred choice for large-scale applications. Additionally, this review incorporates recent advancements in CO2-related conversion technologies, such as photocatalytic and photothermal CO2 reduction, which further enhance the potential of CCES systems. The review highlights the future direction for CCES development, emphasizing the need for optimal compression–expansion ratios, refined analytical models, and integrated multi-disciplinary approaches. This discussion aims to serve as a foundational reference for the effective design and implementation of CCES systems.

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Back cover Inside back cover What is better to enhance the solubility of hydrophobic compounds in aqueous solutions: eutectic solvents or ionic liquids?† Utilizing advancements in chemical sciences for decarbonization: a pathway to sustainable emission and energy reduction The role of the chemical sciences in ‘decarbonizing’ the conversion of energy and industrial and agricultural emissions
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